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EP 0 404 849 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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22.07.1992 Bulletin 1992/30 |
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Date of filing: 25.05.1989 |
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International application number: |
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PCT/US8902/291 |
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International publication number: |
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WO 8912/161 (14.12.1989 Gazette 1989/29) |
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NON-RAM COOLING SYSTEM
KÜHLUNGSANLAGE OHNE FAHRKÜHLLUFT
SYSTEME DE REFROIDISSEMENT SANS PRESSION DYNAMIQUE
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Designated Contracting States: |
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DE FR GB IT |
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Priority: |
03.06.1988 US 202753
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Date of publication of application: |
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02.01.1991 Bulletin 1991/01 |
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Proprietor: SIEMENS AKTIENGESELLSCHAFT |
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80333 München (DE) |
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Inventor: |
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- CHARLES, Herbert, Noel
Chatham, Ontario N7M 5J5 (CA)
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| (56) |
References cited: :
FR-A- 950 728 US-A- 2 274 743 US-A- 4 726 326
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FR-A- 2 529 517 US-A- 4 445 583
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
BACKGROUND AND SUMMARY OF THE INVENTION
[0001] The present invention relates to vehicle cooling systems for non-ram vehicles and
more particularly to a system for transversely mounted engines.
[0002] Most vehicles in production today utilize a forwardly mounted radiator or heat exchanger.
Engine cooling is achieved by fans which are either directly driven by the engine
or by an electric motor. Openings in the front of the vehicle permit air to be forced
through the heat exchanger to supplement the cooling fan as the vehicle proceeds in
a forward direction. The above class of engine cooling systems is often referred to
as a ram-air system. In order to achieve a more aerodynamically efficient vehicle,
it is desirable to streamline the front profile of the vehicle. Such streamlining
may include removal of the frontal openings to lessen aerodynamic drag. As such, ram-air
is no longer available for cooling. Ram-air is also not available for vehicles that
use rear engine installations. Due to the compactness of the engine compartment it
becomes increasingly difficult to provide a sufficient amount of non-ram air to cool
the engine with normal fan configurations. This is especially true for vehicles using
transversely mounted engine and/or transmission configurations. Further, because of
the restrictions imposed by the size of the engine compartment and because of the
finite electrical power available, it is not practical to simply employ a larger capacity
horsepower fan to supply all of the cooling air.
[0003] U.S. Patent 4,726,326 discloses a non-ram cooling system in a vehicle characterized
by the fact that the blower is fitted to and rotatable with the engine flywheel. Accommodations
must therefore be made to the engine in the vicinity of its flywheel, and the inclusion
of the blower will add to the axial length of the installation. In order to avoid
the necessity of making such accommodations, the present invention proposes mounting
the blower about the transmission output shaft. The present invention can be embodied
without necessarily increasing the axial length of the installation since it is disposed
about the transmission output shaft.
[0004] It is an object of the present invention to provide a cooling system for non-ram
engine installations. A further object of the present invention is to provide a cooling
system for a transversely mounted engine installation. A further object of the present
invention is to provide a cooling system whose output is proportional to temperature
demand. Still another object of the invention is to utilize the engine cooling system
in conjunction with a temperature control system to heat a passenger compartment.
[0005] Accordingly, the preferred embodiment of the invention comprises: a cooling system
for an engine mounted transversely to the longitudinal axis of the vehicle; a transmission
mounted substantially parallel to the engine, comprising a power takeoff coupled to
the engine, including a first shaft adapted to be driven by the engine and a rotary
continuously variable (CV) joint or coupling powered by a transmission shaft, extending
parallel to the first shaft. The CV joint is drivingly connected to a driven vehicle
wheel. The system may further include a blower rotationally supported about the CV
joint; and drive means connected to and driven by the first shaft and drivingly connected
to the blower for rotating same. A first heat exchanger is mounted downstream of the
blower and adapted to receive engine coolant. An ar! duct is positioned in surrounding
relation to the blower for defining, in cooperation with the blower, a blower intake
for communicating air generated by the blower to the first heat exchanger. A second
heat exchanger, such as an intercooler for turbocharger, may be positioned within
the first means and controllably connected therewith. The invention further includes
an alternate embodiment which utilizes the waste hot air discharged from the heat
exchanger(s) to heat a passenger compartment.
[0006] While the preferred embodiment utilizes a CV joint or coupling to support the blower,
another embodiment of the invention contemplates supporting the blower, independent
of the CV joint, on its own shaft or bearing. While mounting the blower remote from
a power takeoff shaft affords the opportunity to use belts or gears to affect a speed
increase, another embodiment of the invention contemplates mounting the blower about
the power takeoff shaft. Further, it should be appreciated that the various heat exchanges
can be mounted both upstream or downstream of blower. The different mounting location
basically only changes the mode of air flow through the heat exchanger, i.e. blow-through
versus draw-through.
[0007] Many other objects and purposes of the invention will be clear from the following
detailed description of the drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
IN THE DRAWINGS:
[0008] FIGURE 1 diagrammatically illustrates the present invention.
[0009] FIGURE 1A illustrates an alternate embodiment of the invention.
[0010] FIGURES 2 and 3 are rear and side orthogonal views of a cooling system.
[0011] FIGURE 4 is a top view of the cooling system of FIGURES 2 and 3.
[0012] FIGURE 5 illustrates the pulley arrangement used in the above system.
[0013] FIGURE 6 shows an alternate embodiment of the invention.
[0014] FIGURE 7 illustrates another embodiment of the invention.
[0015] FIGURES 8 and 9 illustrate still another embodiment of the invention.
DETAILED DESCRIPTION OF THE DRAWINGS:
[0016] Reference is made to FIGURE 1 which illustrates a vehicle 20 (shown in phantom line),
having an engine compartment 21. Situated within the engine compartment 21 is an engine
22 mounted transversely to a longitudinal axis 26 of the vehicle. The front and rear
of the vehicle 20 are not expressly identified nor is the relationship of the engine
compartment 21 to the passenger compartment. FIGURE 1 illustrates locations A and
B to show, in a general sense, that the present invention can be used in front and
rear wheel drive vehicles, and both fore and aft of any passenger compartment. Mounted
adjacent the engine is a transmission 30. The transmission is drivingly connected
to the engine by a power take-off unit 32. The power take-off unit may include a torque
converter 34. The power take-off unit 32 and engine crankshaft 35 are shown schematically
as driving the transmission 30 through a chain drive 36 typical of that used in transverse
mounting configurations. While shown as separate elements, a transmission 30 would
normally include the torque converter 34 and power take-off unit 32. The transmission
30 includes an output shaft(s) 38a and/or 38b which are connected to the drive wheels
40a and 40b respectively through shafts 41a,41b and continuously variable (CV) joints
42a and 42b. Boots 43a,43b may be disposed about the shafts to protect the CV joints.
These CV joints 42 are typically splined or otherwise connected to their corresponding
output shafts 38. Situated adjacent the engine 22 and transmission 30 is a heat exchanger
such as radiator 44. The heat exchanger may be mounted fore or aft of the engine/transmission
such that cooling air is either blown or drawn therethrough. The radiator 44 includes
a coolant input 46 (at its top) to receive engine coolant and a coolant output 48
(at its bottom) to return the coolant to the engine. A second heater exchanger 50
is optionally mounted adjacent to the first heater exchanger 44. The heater exchanger
50 may be utilized to cool transmission oil. Alternatively, if the engine is equipped
with a turbocharger, the second heat exchanger may be an intercooler which cools the
boosted turbocharger air. As can be seen by the above described engine/transmission/heat
exchanger installation, ram-air is not available to cool the heat exchangers and
as such sufficient non-ram cooling air must be supplied by some means having a capacity
sufficient to adequately cool the heat exchanger(s). It can be appreciated that in
the above configuration all of the air used for cooling must be generated by a fan
(since ram-air is not available for cooling). The power requirements of this fan are
sufficiently high to exclude the use of the more conventional electrically driven
fan.
[0017] It is contemplated that the heat exchangers 44 and/or 50 will be cooled by a system
utilizing a centrifugal fan or blower 60. It should be appreciated that the space
available in the above described engine/transmission installation is severely limited
by the small size of the engine compartment 21 which in part is defined by the aerodynamically
streamlined vehicle body panels and hood. In FIGURE 1, the blower 60 is rotatingly
mounted coaxial to the transmission output shafts 38a and 38b. More particularly,
the blower 60 is mounted to the outer housing 61 of one of the CV joints such as 42a,
thus providing for an extremely compact configuration. A circumferential blower flange
62 is supported by a bearing 64 about the CV joint 42a. While the above preferred
embodiment secures the bearing 64 to the outer diameter of the CV joint body, a separate
flange or support 65 (see FIGURE 1A) extending from the transmission housing can be
suitable utilized. Attached to or formed as an integral component of the blower flange
62 is a first pulley 66 adapted to receive a V-belt 68, or other drive link, which
is driven by a drive unit generally shown as 70. The drive unit 70 is driven by the
engine through the take-off unit 32. As an example, the drive unit 70 may be coupled
with and driven by an extension of the torque converter shaft 72.
[0018] While only diagrammatically illustrated in FIGURE 1, the drive unit 70 may include
a viscous clutch 74 which includes an output pulley 76 preferably having a diameter
larger than that of the first pulley 66. It is contemplated that the drive unit 70
may include means by which its output is controlled in proportion to cooling demand.
This may be accomplished by using what is known as a remote sensing viscous clutch.
One such installation includes utilizing a temperature responsive viscous clutch of
known variety which utilizes a capillary tube 80 connected to sense coolant temperature.
As illustrated in FIGURE 1, one end of the capillary tube 80 is connected to the inlet
46 of the radiator 44, while its other end is communicated to the viscous clutch 74
in a known manner. In this manner the drive characteristics of the viscous clutch
74 will vary in accordance with engine coolant temperature thereby driving the blower
60 via the belt 68. The output of the clutch may be controlled in a continuous, temperature
dependent fashion, or activated at a predetermined temperature. By utilizing the remote
sensing viscous clutch engine power is transmitted to the blower only when there is
a need to cool the heat exchanger(s) thereby lessening the parasitic drag on the engine.
It should be appreciated that the viscous clutch can be replaced by a variety of electrically
operated clutches with corresponding electrical temperature sensors and controllers.
[0019] Positioned about the blower 60 is a blower casing 90 which is more clearly illustrated
in the other FIGURES. The blower casing may be formed separate or part of an intake
box to direct air to the blower 60. The intake box 110 may be located proximate the
inner fender panel 112 about the wheel well. The intake box 110 includes an inlet
air opening 116. Secured to the blower casing 90 is a duct 92 communicated to the
heat exchangers 44 and 50. The duct 92 is shown in dotted line so as not to obscure
other elements of FIGURE 1. As mentioned above, the second heat exchanger 50 is preferably
mounted substantially parallel to and adjacent the radiator 44. It should be appreciated
that if the heat exchanger 50 is in constant communication with the blower 60 it might
lessen the airflow through the radiator. Since the periods of cooling demand for the
second heat exchanger 50 may be different from that required by the radiator 44, it
is contemplated that the present invention may include a camper, such as damper 94,
rotatably mounted within the duct 92 and positioned upstream of the heat exchanger
50. The damper 94 may be rotated by a control or actuator unit 96 in response to a
signal indicative of the temperature of the fluid to be cooled. Such temperature signal
may be generated by an electronic control unit in a known variety. If the heat exchanger
50 is used to cool boost air from a turbocharger or supercharger the damper can be
controlled by the turbocharger or supercharger electronics. During intervals when
it is not necessary to cool the fluid within the heat exchanger 50, the control unit
96 will maintain the damper 94 in the position indicated in FIGURE 1 thereby permitting
all of the cooling air to be forced through the radiator 44. During those instances
when the fluid or air communicated to the heat exchanger 50 necessitates cooling the
control unit 96 may partially or fully open the damper 94 (shown as dotted line) thereby
permitting cooling air to flow through the heat exchanger 50.
[0020] Reference is made to FIGURES 2-4 which illustrate in greater detail the major components
of the present invention. FIGURES 2 and 3 are rear and side orthogonal views of the
present invention. FIGURE 4 illustrates a top view of the embodiment of the invention
illustrated in FIGURES 2 and 3. The heat exchangers 44 and 50 are mounted in a slanted
orientation to more easily fit within the engine compartment. FIGURES 2 and 3 more
clearly illustrate the mounting relationship of the blower 60 to the outer diameter
casing of the CV joint 42a. The intake box has been removed from FIGURES 2 and 3 for
convenience. The blower casing 90 and duct 92 are similarly illustrated with greater
clarity in the above FIGURES. While the viscous clutch 94 cannot be seen in FIGURE
3, it is located in the upper left-hand portion 93 of the blower casing 90 which is
appropriately mounted by bolts or the like to the engine 22. The relation of the output
pulley 76 of the viscous clutch and the blower pulley 66 are more clearly shown in
FIGURES 4 and 5.
[0021] FIGURE 4 also illustrates an inlet box 110 extending from the blower opening 98 of
the blower casing 90. The intake box is an enclosed structure having a remotely located
air inlet 116. The inlet box is also provided with another opening 118, about the
axle 41a and boot 120 which seal the opening 118 to prevent contamination. The remote
inlet may be connected to any point in the vehicle outer shell to permit clean air
to enter the blower. FIGURE 5 more particularly illustrates the drive means 70 and
its interconnection with the blower pulley. FIGURE 5 further illustrates that the
air discharged from the radiator and/or second heat exchanger may be ducted away from
the engine compartment through a duct 100 extending therefrom. FIGURE 6 illustrates
a front wheel drive vehicle 200 with the engine mounted in front of a passenger compartment
202. An inlet box 110 has been superimposed over the engine/transmission configuration
(identical to that shown in FIGURE 5). The opening 160 of the inlet box is located
in a side fender panel sufficiently above ground level such that the ambient clear
air is drawn into the inlet box. A filter such as filter 212 may be positioned downstream
of the opening 160. As illustrated, the outlet end 214 of duct 100 extends below the
engine 22 to vent hot air away from the engine compartment 21. Instead of or in conjunction
with duct 100, the heated air exiting the heat exchangers may be ducted into the passenger
compartment 202 through a duct 216. The duct 216, extends through the fire wall 224
and may include a damper 218 and filter 220, and is communicated to a temperature
control unit 222 which may include another damper mechanism 226. The temperature control
unit 222, of known variety, in response to passenger demand will regulate the amount
of heated air entering the passenger compartment by controlling the dampers 226 and/or
218 by an actuator 228 to thereby heat same. It should be appreciated that one damper
is needed. On particular advantage of the above alternate embodiment of the invention
is that effective heating of the passenger compartment can be accomplished without
the necessity of a conventional type coolant heater core.
[0022] FIGURES 7 and 8 illustrate the use of the present invention in an exemplary rear
wheel drive vehicle 300. As can be seen, the engine/transmission installation is installed
within the engine compartment 21 rearward of the passenger compartment 302. As with
FIGURE 7, the inlet box 110 has been superimposed about the blower 60. The inlet box
110 includes an inlet 304 which extends to the rear panel, rear deck lid, or other
equivalent location. The exhaust duct 100 extends downwardly to vent hot air away
from the engine compartment. Extending from the duct 100 is at least one additional
air duct 306a and/or 306b. This duct and/or ducts, extends forward of the exhaust
duct 100 toward the passenger compartment 302. More specifically these ducts 306 may
be positioned along the vehicle skin and may include air filters 308. The damper mechanisms
are controlled in a conventional manner by a heater control unit 312 to regulate the
temperature of the passenger compartment 302. It should be appreciated that while
the above figures illustrate heat exchangers positioned rearward of the engine and
transmission this is not a limitation of the present invention. In each of the above
embodiments the various heat exchangers can be mounted in front of the engine/transmission
with appropriate changes in the duct arrangement in either a blow-through or draw-through
configuration. As an example, FIGURE 9 illustrates a cooling system superimposed upon
the engine/transmission configuration illustrated in many of the earlier figures.
In FIGURE 9, the heat exchanger 44′ and ducting 92′ are located forward of the engine/transmission
configuration. An output duct 100′, positioned forward of the heat exchanger or radiator
44′, channels the hot air exiting the radiator 44′ out of the engine compartment 21.
1. A non-ram cooling system (10) in a vehicle (20) having an engine (22) mounted transversely
to the longitudinal axis (26) of the vehicle (20);
a transmission (30) mounted substantially parallel to the engine (22), comprising
a power takeoff unit (32) coupled to the engine, a first output shaft (72) adapted
to be driven by the engine (22) and a transmission output shaft (38a,38b) for driving
the vehicle wheels;
a blower (60);
drive means (70) connected to and driven by the first output shaft (72) and drivingly
connected to the blower (60) for rotating same;
a first heat exchanger (44) for cooling engine coolant; and
first duct means (90) for communicating air generated by the blower to the first
heat exchanger;.
characterized in that the blower is disposed about the transmission output shaft
(38).
2. A non-ram cooling system as defined in Claim 1 wherein said drive means (70) comprises
means for driving the blower at speeds as a function of engine temperature.
3. A non-ram cooling system as defined in Claim 2 wherein said drive means comprises
a temperature responsive viscous clutch (74) the output of which varies according
to engine coolant temperature.
4. A non-ram cooling system as defined in Claim 3 wherein said drive means comprises
means (80) for controlling the output of said viscous clutch in proportion to the
temperature of engine coolant.
5. A non-ram cooling system as defined in Claim 1 wherein the engine includes a second
heat exchanger (50) mounted within said first duct means (90) to receive cooling air,
said first duct means comprising:
means (94, 96) responsive to a signal for controlling the communication of cooling
air to the second heat exchanger.
6. A non-ram cooling system as defined in Claim 5 wherein the last-mentioned means
(94, 96) includes a damper (94) mounted in said first duct means and movable to permit
cooling air to flow to said second heat exchanger.
7. A non-ram cooling system as defined in Claim 6 wherein said damper is moved by
an actuator (96) through open and closed positions in response to a signal indicative
of fluid temperature in said second heat exchanger.
8. A non-ram cooling system as defined in Claim 1 wherein a continuously variable
coupling (42) is drivingly connected to the transmission shaft (38) and wherein the
blower is mounted about the transmission shaft and rotatingly supported by the continuously
variable coupling.
9. A non-ram cooling system as defined in Claim 1 wherein the blower has an intake
(110) located in a vehicle body portion to insure the inflow of substantially clean
air.
10. A non-ram cooling system as defined in Claim 1 further including second duct means
(100) for ducting hot air from said first heat exchanger and away from the engine
(22), and
wherein said second duct means (100) includes third duct means (216) for ducting
at least a portion of the hot air into a passenger compartment (302) of the vehicle,
and means (222) for controlling the temperature level of the passenger compartment
in response to passenger demand, and
wherein said third duct means includes an inlet damper (218) movable in response
to a control signal for bypassing hot air from said second duct means to the passenger
compartment, and
wherein said third duct means includes an exit damper (226) proximate the passenger
compartment movable in response to a control signal indicative of passenger temperature
demand, and
wherein the engine is located in an engine compartment (21) behind the passenger
compartment, said first heat exchanger is located behind the engine, said second duct
means (100) is operative to exhaust heated air out from the rear of the engine compartment,
and wherein said third duct means includes at least one air duct (306a,306b) extending
forward of said second duct means into the passenger compartment.
1. Kühlungsanlage ohne Fahrkühlluft (10) in einem Fahrzeug (20) mit einer Brennkraftmaschine
(22), die quer zur Längsachse (26) des Fahrzeuges (20) angebracht ist;
einem im wesentlichen parallel zur Brennkraftmaschine (22) angebrachten Übertragungsgetriebe
(30) mit einer Abtriebseinheit (32), die mit der Brennkraftmaschine gekuppelt ist,
einer ersten Abtriebswelle (72), die durch die Brennkraftmaschine (22) antreibbar
ist, und einer Getriebe-Abtriebswelle (38a, 38b) zum Antreiben der Fahrzeugräder;
einem Gebläse (60);
einem Antrieb (70), der mit der ersten Abtriebswelle (72) verbunden ist und von
dieser angetrieben wird und der mit dem Gebläse (60) treibend verbunden ist, um es
zu drehen;
einem ersten Wärmeübertrager (44) zum Kühlen des Brennkraftmaschinenkühlmittels;
einer ersten Kanalanordnung (90), die von dem Gebläse erzeugte Luft dem ersten
Wärmeübertrager zuleitet;
dadurch gekennzeichnet, daß das Gebläse um die Getriebe-Abtriebswelle (38) herum
angeordnet ist.
2. Kühlungsanlage nach Anspruch 1, bei der der Antrieb (70) Mittel zum Antreiben des
Gebläses mit einer Geschwindigkeit in Abhängigkeit von der Brennkraftmaschinentemperatur
aufweist.
3. Kühlungsanlage nach Anspruch 2, bei der der Antrieb eine auf Temperatur ansprechende
Strömungskupplung (74) aufweist, deren Ausgangsleistung sich in Abhängigkeit von der
Temperatur des Brennkraftmaschinenkühlmittels ändert.
4. Kühlungsanlage nach Anspruch 3, bei der der Antrieb Mittel (80) zum Regeln der
Abtriebsleistung der Strömungskupplung proportional zur Temperatur des Brennkraftmaschinenkühlmittels
aufweist.
5. Kühlungsanlage nach Anspruch 1, bei der die Brennkraftmaschine einen zweiten Wärmeübertrager
(50) aufweist, der zur Aufnahme von Kühlluft innerhalb der ersten Kanalanordnung (90)
angebracht ist, wobei die erste Kanalanordnung aufweist:
Mittel (94, 96), die auf ein Signal zum Steuern der Abgabe von Kühlluft an den
zweiten Wärmeübertrager ansprechen.
6. Kühlungsanlage nach Anspruch 5, bei der die zuletzt genannten Mittel (94, 96) einen
Dämpfer (94) umfassen, der in der ersten Kanalanordnung angebracht und bewegbar ist,
um die Strömung von Kühlluft zu dem zweiten Wärmeübertrager zu ermöglichen.
7. Kühlungsanlage nach Anspruch 6, bei der der Dämpfer durch eine Betätigungsvorrichtung
(96) durch Öffnungs- und Schließstellungen bewegbar ist, und zwar in Abhängigkeit
von einem Signal, das die Strömungsmitteltemperatur in dem zweiten Wärmeübertrager
darstellt.
8. Kühlungsanlage nach Anspruch 1, bei der eine kontinuierlich veränderliche Kupplung
(42) mit der Getriebeabtriebswelle (38) treibend verbunden ist und bei der das Gebläse
um die Getriebewelle herum angebracht und durch die kontinuierlich veränderliche Kupplung
drehbar gelagert ist.
9. Kühlungsanlage nach Anspruch 1, bei der das Gebläse einen Einlaß (110) besitzt,
der in einem Fahrzeugchassisabschnitt angeordnet ist, um das Einströmen von im wesentlichen
reiner Luft sicherzustellen.
10. Kühlungsanlage nach Anspruch 1, die ferner eine zweite Kanalanordnung (100) zum
Ableiten von Heizluft aus dem ersten Wärmeübertrager und weg von der Brennkraftmaschine
(22) aufweist und
bei der die zweite Kanalanordnung (100) eine dritte Kanalanordnung (216) zur Abgabe
mindestens eines Teils der Heißluft an einen Passagierraum (302) des Fahrzeuges sowie
Mittel (222) zum Steuern des Temperaturniveaus des Passagierraumes in Abhängigkeit
vom Passagierbedarf umfaßt, und
bei der die dritte Kanalanordnung einen Einlaßdämpfer (218) umfaßt, der in Abhängigkeit
von einem Steuersignal bewegbar ist, um Heizluft aus der zweiten Kanalanordnung in
einem Bypaßstrom zu dem Passagierraum zu führen, und
bei der die dritte Kanalanordnung einen Auslaßdämpfer (226) nächst dem Passagierraum
umfaßt, der in Abhängigkeit von einem Steuersignal bewegbar ist, das den Passagiertemperaturbedarf
darstellt, und
bei der die Brennkraftmaschine in einem Maschinenraum (21) hinter dem Passagierraum
angeordnet ist, der erste Wärmeübertrager hinter der Brennkraftmaschine angeordnet
ist, die zweite Kanalanordnung (100) erwärmte Luft aus dem rückwärtigen Bereich des
Maschinenraums ableitet, und bei der die dritte Kanalanordnung mindestens einen Luftkanal
(306a, 306b) umfaßt, der sich vor der zweiten Kanalanordnung in den Passagierraum
erstreckt.
1. Un système de refroidissement sans pression dynamique (10) dans un véhicule (20)
comportant un moteur (22) monté transversalement par rapport à l'axe longitudinal
(26) du véhicule (20);
une transmission (30) montée de façon pratiquement parallèle au moteur (22), comprenant
une unité d'accouplement (32) couplée au moteur, un premier arbre de sortie (72) conçu
pour être entraîné par le moteur (22) et un arbre de sortie de la transmission( 38a,
38b) destiné à entraîner les roues du véhicule;
un ventilateur (60);
des moyens d'entraînement (70) accouplés au premier arbre de sortie (72) et entraînés
par celui-ci, ces moyens étant accouplés au ventilateur (60) pour le faire tourner;
un premier échangeur de chaleur (44) pour refroidir le fluide de refroidissement
du moteur; et
une première structure de conduit (90) destinée à faire circuler vers le premier
échangeur de chaleur l'air qui est mis en mouvement par le ventilateur;
caractérisé en ce que le ventilateur est disposé autour de l'arbre de sortie de
la transmission (38).
2. Un système de refroidissemnt sans pression dynamique selon la revendication 1,
dans lequel les moyens d'entraînement (70) comprennent des moyens destinés à entraîner
le ventilateur à des vitesses qui sont fonction de la température du moteur.
3. Un système de refroidissement sans pression dynamique selon la revendication 2,
dans lequel les moyens d'entraînement comprennent un embrayage visqueux sensible à
la température (74) dont la vitesse de sortie varie en fonction de la température
du fluide de refroidissement du moteur.
4. Un système de refroidissement sans pression dynamique selon la revendication 3,
dans lequel les moyens d'entraînement comprennent des moyens (80) destinés à commander
la vitesse de sortie de l'embrayage visqueux proportionnellement à la température
du fluide de refroidissement du moteur.
5. Un système de refroidissement sans pression dynamique selon la revendication 1,
dans lequel le moteur comprend un second échangeur de chaleur (50) monté à l'intérieur
de la première structure de conduit (90) de façon à recevoir l'air de refroidissement,
cette première structure de conduit comprenant :
des moyens (94, 96) qui réagissent à un signal en commandant le passage de l'air
de refroidissement vers le second échangeur de chaleur.
6. Un système de refroidissement sans pression dynamique selon la revendication 5,
dans lequel les moyens mentionnés en dernier (94, 96) comprennent un volet (94) qui
est monté dans la première structure de conduit et qui peut être déplacé pour permettre
à l'air de refroidissement de circuler vers le second échangeur de chaleur.
7. Un système de refroidissement sans pression dynamique selon la revendication 6,
dans lequel le volet est déplacé par un actionneur (96) entre des positions ouverte
et fermée, sous la dépendance d'un signal qui indique la température du fluide dans
le second échangeur de chaleur.
8. Un système de refroidissement sans pression dynamique selon la revendication 1,
dans lequel un coupleur à variation continue (42) est accouplé à l'arbre de la transmission
(38), et dans lequel le ventilateur est monté autour de l'arbre de la transmission
et il est supporté de façon tournante par le coupleur à variation continue.
9. Un système de refroidissement sans pression dynamique selon la revendication 1,
dans lequel le ventilateur comporte une prise d'air (110) qui se trouve dans une partie
de la carrosserie du véhicule pour garantir l'entrée d'air pratiquement propre.
10. Un système de refroidissement sans pression dynamique selon la revendication 1,
comprenant en outre une seconde structure de conduit (100) qui est destinée à canaliser
l'air chaud qui provient du premier échangeur de chaleur et à l'éloigner du moteur
(22), et
dans lequel la seconde structure de conduit (100) comprend une troisième structure
de conduit (216) qui est destinée à canaliser une partie de l'air chaud vers un habitacle
(302) du véhicule, et des moyens (222) qui sont destinés à commander la température
de l'habitacle à la demande des occupants, et
dans lequel la troisième structure de conduit comprend un volet d'entrée (218)
qui peut être déplacé sous l'effet d'un signal de commande pour dériver l'air chaud
de la seconde structure de conduit vers l'habitacle, et
dans lequel la troisième structure de conduit comprend un volet de sortie (226)
proche de l'habitacle, qui peut être déplacé sous l'effet d'un signal de commande
représentatif de la température que désirent les occupants, et
dans lequel le moteur se trouve dans un compartiment de moteur (21) situé derrière
l'habitacle, le premier échangeur de chaleur se trouve derrière le moteur, la seconde
structure de conduit (100) évacue l'air chauffé à partir de l'arrière du compartiment
de moteur, et dans lequel la troisième structure de conduit comprend au moins un conduit
d'air (306a, 306b) qui s'étend en avant de la seconde structure de conduit, jusqu'à
l'intérieur de l'habitacle.